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A Differential Genome-Wide Transcriptome Analysis: Impact of Cellular Copper on Complex Biological Processes like Aging and Development

机译:一个微分全基因组转录组分析:蜂窝铜对像老龄化和发展复杂生物过程的影响

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摘要

The regulation of cellular copper homeostasis is crucial in biology. Impairments lead to severe dysfunctions and are known to affect aging and development. Previously, a loss-of-function mutation in the gene encoding the copper-sensing and copper-regulated transcription factor GRISEA of the filamentous fungus Podospora anserina was reported to lead to cellular copper depletion and a pleiotropic phenotype with hypopigmentation of the mycelium and the ascospores, affected fertility and increased lifespan by approximately 60% when compared to the wild type. This phenotype is linked to a switch from a copper-dependent standard to an alternative respiration leading to both a reduced generation of reactive oxygen species (ROS) and of adenosine triphosphate (ATP). We performed a genome-wide comparative transcriptome analysis of a wild-type strain and the copper-depleted grisea mutant. We unambiguously assigned 9,700 sequences of the transcriptome in both strains to the more than 10,600 predicted and annotated open reading frames of the P. anserina genome indicating 90% coverage of the transcriptome. 4,752 of the transcripts differed significantly in abundance with 1,156 transcripts differing at least 3-fold. Selected genes were investigated by qRT-PCR analyses. Apart from this general characterization we analyzed the data with special emphasis on molecular pathways related to the grisea mutation taking advantage of the available complete genomic sequence of P. anserina. This analysis verified but also corrected conclusions from earlier data obtained by single gene analysis, identified new candidates of factors as part of the cellular copper homeostasis system including target genes of transcription factor GRISEA, and provides a rich reference source of quantitative data for further in detail investigations. Overall, the present study demonstrates the importance of systems biology approaches also in cases were mutations in single genes are analyzed to explain the underlying mechanisms controlling complex biological processes like aging and development.
机译:细胞铜稳态的调节在生物学中至关重要。损伤会导致严重的功能障碍,并已知会影响衰老和发育。以前,据报道,丝状真菌Podospora anserina的铜敏感和铜调节转录因子GRISEA编码基因中的功能丧失突变导致细胞铜耗竭和多效性表型,菌丝体和子囊孢子色素沉着不足与野生型相比,影响生育力,寿命延长约60%。该表型与从依赖铜的标准向替代呼吸的转换有关,导致减少了活性氧(ROS)和三磷酸腺苷(ATP)的产生。我们对野生型菌株和贫铜的水稻突变体进行了全基因组比较转录组分析。我们明确地将两种菌株中的9700个转录组序列分配给了P. anserina基因组的10600个预测和注释的开放阅读框,表明该转录组的覆盖率达到90%。 4,752个转录本的丰度差异显着,而1,156个转录本的差异至少为3倍。通过qRT-PCR分析研究选择的基因。除了这一一般特征外,我们还分析了数据,重点研究了与ser病突变相关的分子途径,并利用了P. anserina完整的基因组序列。该分析证实但也纠正了单基因分析获得的早期数据的结论,确定了新的因子候选物作为细胞铜稳态系统的一部分,包括转录因子GRISEA的靶基因,并为进一步详细提供了丰富的定量数据参考来源调查。总体而言,本研究证明了在分析单个基因的突变以解释控制复杂生物过程(如衰老和发育)的潜在机制时,系统生物学方法的重要性。

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